TECHNICAL FIELD
[0001] The present invention generally relates to devices that are spring biased to a null
position and, more particularly, to a cantilever spring return to null assembly that
provides controllable dual spring rates.
BACKGROUND
[0002] Human-machine interfaces that are used to translate human movements to machine movements
are used in myriad industries. For example, some aircraft flight control systems include
a human-machine interface in the form of one or more hand or foot user interfaces.
The user interfaces are typically configured to be disposed in a null position and
the flight control system, in response to input forces supplied to the user interface
from the pilot that move the user interface from its null position, controls the movements
of various aircraft flight control surfaces. No matter the particular end-use system,
the human-machine interface preferably includes some type of haptic feedback mechanism
back through the interface to the interface operator. These haptic feedback mechanisms
may be implemented using active devices, passive devices, or both.
[0003] Passive devices are generally implemented using one or more springs that not only
supply haptic feedback, but also supply forces that urge the user interface, when
moved from the null position, back toward the null position. Moreover, in some implementations,
it may be desired to supply different force magnitudes to the user interface depending
on the direction in which the user interface is being moved. For example, it may be
desirable to supply a greater force magnitude when the user interface is being moved
in one direction than when it is being moved in another direction. In the context
of the above-mentioned aircraft user interfaces, it may be desirable to supply a greater
force magnitude when the user interface is being moved in an inboard direction than
when it is being moved in an outboard direction.
[0004] In some instances, one or more cantilever springs may be used to implement passive,
return-to-null devices. In such instances, the cantilever spring may be coupled at
one end to a rotating shaft. One drawback with using this type of spring is that cantilever
springs, when rotated from a shaft with a fixed pivot point, are inherently non-linear.
This is due, at least in part, to the spring length varying as the angular displacement
of the shaft varies from its null position. More specifically, the spring rate of
the cantilever springs decreases as the angular displacement from the null position
increases. Another drawback with this type of spring is that plural cantilever springs
may be needed to exhibit the desired variations in force magnitudes for different
user interface movement directions.
US 4 723 458 discloses a control mechanism comprising a casing, an operating lever projecting
at the top from the casing and arranged to swivel omnidirectionally against a spring
producing a resetting force.
DE 951 763 discloses control lever comprising a cam body with continuously or intermittently
running control surfaces to provide control movements in a plane and having another
control surface to control movements in a direction perpendicular to that plane.
DE 10 2007 018891 discloses gear shift lever rotatable around rotation axes in rotation directions,
where the lever is supported at a spherical-like body, through which the both rotation
axes run. The body is rotatably guided into a hollow body in the rotation directions,
where an extension is arranged at the body. The extension is movable into a switching
position and a spring unit is influenced in a starting position with a pretensioning
force on the extension.
EP 0 145 684 discloses a control assembly comprising a housing, a control lever extending from
the housing and pivotally mounted therein and spring means arranged in the housing
an effective to return the control lever automatically to a neutral position.
[0005] Hence, there is a need for a passive return-to-null device, such as a cantilever
spring, that exhibits little, if any, spring rate non-linearity its fixed pivot point
is rotated from a null position, and/or that may be configured to exhibit variations
in force magnitudes for different user interface movement directions. The present
invention addresses at least these needs.
BRIEF SUMMARY
[0006] The present invention in its various aspects is as set out in the claims. In one
embodiment, and by way of example only, a return-to-null assembly includes a shaft,
a cantilever spring, and a pivot assembly. The shaft is configured to rotate from
a null position to a plurality of control positions. The cantilever spring includes
a fixed end, a free end, and opposing first and second sides. The cantilever spring
fixed end is coupled to the shaft and is configured to supply a torque to the shaft,
at least when the shaft is rotated from the null position, that urges the shaft toward
the null position. The pivot assembly engages the cantilever spring at a location
that is closer to the cantilever spring free end than the cantilever spring fixed
end, and includes a first contact, a second contact, a first load spring, and a second
load spring. The first contact engages the cantilever spring first side, the second
contact engages the cantilever spring second side, the first load spring supplies
a first force to the first contact that urges the first contact into engagement with
the cantilever spring first side, and the second load spring supplies a second force
to the second contact that urges the second contact into engagement with the cantilever
spring second side.
[0007] In another exemplary embodiment, a spring-return-to-null assembly includes a cantilever
spring and a pivot assembly. The cantilever spring includes a fixed end, a free end,
and opposing first and second sides. The cantilever spring fixed end is adapted to
be coupled to a shaft and is configured to supply a torque to the shaft at least when
a torque is supplied to the cantilever spring fixed end. The pivot assembly engages
the cantilever spring at a location that is closer to the cantilever spring free end
than the cantilever spring fixed end, and includes a first contact, a second contact,
a first load spring, and a second load spring. The first contact engages the cantilever
spring first side, the second contact engages the cantilever spring second side, the
first load spring supplies a force to the first contact that urges the first contact
into engagement with the cantilever spring first side, and the second load spring
supplies a force to the second contact that urges the second contact into engagement
with the cantilever spring second side.
[0008] In yet another exemplary embodiment, a spring pivot assembly includes a frame and
a pair of spring-loaded roller assemblies. The pair of spring-loaded roller assemblies
are movably disposed within the frame, and each includes a bracket, a roller shaft,
a roller, a plurality of bearings, and a load spring. The bracket is movably disposed
within the frame, the roller shaft is coupled to the bracket, and the roller surrounds
at least a portion of the roller shaft. Each bearing includes an inner race and an
outer race, and each of the inner races is mounted on the roller shaft, and the roller
is mounted on each of the outer races. The load spring is disposed between the frame
and the bracket.
[0009] In still exemplary embodiment, a hand controller assembly includes a user interface
and a cantilever spring. The user interface is configured to rotate from a null position
to a plurality of control positions. The cantilever spring assembly is coupled to
the user interface and is configured to supply a force to the user interface, at least
when the user interface is rotated from the null position, that urges the user interface
toward the null position. The cantilever spring assembly comprises a plurality of
individual cantilever springs stacked in parallel. Each individual cantilever spring
is in sliding contact with at least one other individual cantilever spring. Each individual
cantilever spring includes a fixed end and a free end, and the fixed end of each individual
cantilever spring is coupled to the user interface.
[0010] Furthermore, other desirable features and characteristics of the present invention
will become apparent from the subsequent detailed description of the invention and
the appended claims, taken in conjunction with the accompanying drawings and this
background of the invention.
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] The present invention will hereinafter be described in conjunction with the following
drawing figures, wherein like numerals denote like elements, and
[0012] FIG. 1 is a perspective view of an exemplary embodiment of a portion of a human-machine
interface assembly;
[0013] FIG. 2 is a front view of an exemplary spring return-to-null assembly that may be
used to implement the human-machine interface of FIG. 1;
[0014] FIGS. 3A and 3B depict an exemplary cantilever spring that may be used to implement
the spring return-to-null assembly of FIG. 2
[0015] FIG. 4 is a plan view of an exemplary pivot assembly that may be used to implement
the spring return-to-null assembly of FIG. 2; and
[0016] FIG. 5 is an exploded view of the exemplary pivot assembly depicted in FIG. 4;
[0017] FIG. 6 is a front view of the exemplary pivot assembly depicted in FIG. 4;
[0018] FIG. 7 is a top view of the exemplary pivot assembly depicted in FIG. 4;
[0019] FIGS. 8 and 9 are cross section views of the exemplary pivot assembly depicted in
FIG. 4 taken along lines 8-8 and 9-9 in FIG. 7, respectively;
[0020] FIGS. 10 and 11 depict operation of the spring return-to-null assembly when mounted
as depicted in FIG. 2;
[0021] FIGS. 12 and 13 depict an alternative mounting arrangement of the spring return-to-null
assembly to implement dual spring rates; and
[0022] FIGS. 14-17 depict operation of the spring return-to-null assembly when mounted as
depicted in FIGS. 12 and 13.
DETAILED DESCRIPTION
[0023] The following detailed description is merely exemplary in nature and is not intended
to limit the invention or the application and uses of the invention. Furthermore,
there is no intention to be bound by any theory presented in the preceding background
or the following detailed description.
[0024] An exemplary embodiment of a portion of a human-machine interface assembly 100 is
depicted in FIG. 1, and includes a user interface 102, a gimbal assembly 104, and
a plurality of spring return-to-null assemblies 106. The user interface 102 is coupled
to the gimbal assembly 104 and is configured to receive an input force from a user.
The user interface 102 may be implemented according to any one of numerous configurations.
In the depicted embodiment, however, it is implemented as a grip, or control stick,
that is preferably dimensioned to be grasped by a hand.
[0025] The gimbal assembly 104 is mounted within a housing assembly 110 and is configured
to allow the user interface 102 to be moved from a null position 109, which is the
position depicted in FIG. 1, to a plurality of control positions in a plurality of
directions. More specifically, the gimbal assembly 104, in response to an input force
supplied to the user interface 102, allows the user interface 102 to be moved from
the null position 109 to a plurality of control positions, about two perpendicular
rotational axes - a first rotational axis 111 and a second rotational axis 113. It
will be appreciated that if the human-machine interface assembly 100 is implemented
as an aircraft flight control human-machine interface, such as a pilot (or co-pilot)
inceptor, then the first and second rotational axes 111, 113 may be referred to as
the roll axis and the pitch axis, respectively.
[0026] No matter its specific end use, the gimbal assembly 104 includes, among various other
components, a first shaft (or shafts) 122 and a second shaft 124 that are each rotationally
mounted in the housing assembly 110. The first shaft(s) 122 is (are) rotationally
mounted along the first rotational axis 111, and the second shaft 124 is rotationally
mounted along the second rotational axis 113. The gimbal assembly 104, via the first
and second shafts 122, 124, and its various other components, allows the user interface
102 to be movable about the first rotational axis 111 in a port direction 112 and
a starboard direction 114, and about the second axis 113 in a forward direction 116
and an aft direction 118. It will additionally be appreciated that the gimbal assembly
104 is configured to allow the user interface 102 to be simultaneously rotated about
the first and second rotational axes 111, 113 to move the user interface 102 in a
combined forward-port direction, a combined forward-starboard direction, a combined
aft-port direction, or a combined aft-starboard direction, and back to or through
the null position 109. A detailed description of the gimbal assembly 104 is not needed
to fully enable or describe the invention, and will thus not be provided.
[0027] Before proceeding further, it is noted that the human-machine interface assembly
100 may be implemented as either an active system or a passive system. If implemented
as an active system, the assembly 100 may further include one or more non-illustrated
motors to actively supply force feedback to the user interface 102. If implemented
as a passive system, it will be appreciated that the assembly 100 would not include
any motors. In either instance, however, the assembly 100 would preferably include
the spring return-to-null assemblies 106. In the case of the active system, the motors
would be the primary means of supplying feedback force to the user interfaces 102,
with the spring return-to-null assemblies 106 being the back-up feedback force source.
It will nonetheless be appreciated that in the remainder of the description, the assembly
100 is described as if it were implemented as a fully passive system.
[0028] The spring return-to-null assemblies 106, which in the depicted embodiment each include
a first spring return-to-null assembly 106-1 and a second spring return-to-null assembly
106-2, are mounted on the housing assembly 110 and are used to supply force feedback
to the user interface 102 when the user interface 102 is moved from the null position
109. The first spring return-to-null assembly 106-1 is configured to supply force
feedback to the user interface 102 in opposition to user interface displacements having
a vector component in either the forward or backward direction 116, 118. The second
spring return-to-null assembly 106-2 is configured to supply force feedback to the
user interface 102 in opposition to user interface displacements having a vector component
in either the port or starboard direction 112, 114. The spring return-to-null assemblies
106 are also configured such that the force feedback each supplies is adjustable,
depending on the direction in which the user interface 102 is moved. That is, the
spring return-to-null assemblies 106 may be adjusted such that the feedback force
it supplies to the user interface 102 differs, depending on the direction in which
the user interface is moved. For example, when the user interface 102 is moved in
the port direction 112, the first spring return to null assembly 106-1 may supply
feedback force magnitudes that are unequal to the feedback force magnitudes it supplies
(for a given displacement magnitude) when the user interface 102 is moved in the starboard
direction 114. Similarly, when the user interface 102 is moved in the forward direction
116, the second spring return to null assembly 106-1 may supply feedback force magnitudes
that are unequal to the feedback force magnitudes it supplies (for a given displacement
magnitude) when the user interface 102 is moved in the aft direction 118. A particular
preferred embodiment of one the spring return-to-null assemblies 106 is depicted in
FIG. 2, and with reference thereto will now be described in greater detail.
[0029] The spring return-to-null assemblies 106 each include a spring 202, a clamp 204,
and a pivot assembly 206. The spring 202 is implemented as a cantilever spring, and
thus includes a fixed end 208 and a free end 210, and additionally includes a first
side 212 and an opposing second side 214. The cantilever spring fixed end 208 is coupled
to the shaft 122 (124) via the clamp 204 and thus rotates whenever the shaft 122 (124)
is rotated. The cantilever spring free end 210 is disposed between first and second
contacts 216, 218 in the pivot assembly 206, which is described in greater detail
further below. As will also be described in greater detail below, the first and second
contacts 216, 218 are configured such that the cantilever spring 202 is free to move
axially between the first and second contacts 216, 218 whenever the cantilever spring
free end 210 is rotated. It will thus be appreciated that the cantilever spring 202,
via the free end 210, supplies a torque to the shaft 122 (124), whenever the user
interface 102, and thus the shaft 122 (124), is rotated out of the null position 109,
that urges the shaft 122 (124) toward the null position.
[0030] Briefly returning to FIG. 1, it is seen that in the depicted embodiment one or more
strain gages 126 are also mounted on the cantilever spring 202. The strain gages 126
may be mounted on one or both cantilever springs 202, and on either or both of the
cantilever spring first side 212 or second side 214. Preferably, however, strain gages
126 are mounted on both of the cantilever springs 202 and on both sides 212, 214 of
each cantilever spring 202. No matter the number and location of the strain gages,
these devices are preferably coupled to supply appropriate signals to a non-illustrated
circuit or controller for health monitoring, primary or secondary position sensing,
or both.
[0031] The cantilever spring 202 may be variously implemented; however, and with reference
now to FIG. 3, it is seen that the cantilever spring 202 is preferably implemented
using a plurality of individual cantilever springs 302 (e.g., 302-1, 302-2, 302-3,
... 302-N). The individual cantilever springs 302 are stacked in a parallel arrangement
of additive springs. Each of the individual cantilever springs 302 are also in sliding
contact with each adjacent individual cantilever spring 302, effectively creating
slip planes between adjacent individual cantilever springs 302. This configuration
reduces the relatively high stresses that are generally associated with this type
of spring. It will be appreciated that the number of individual cantilever springs
302 that are used to implement the cantilever spring 202 may vary. In one particular
embodiment, the cantilever spring 202 used to implement the first return-to-null assembly
106-1 includes 13 number of individual cantilever springs 302, and the cantilever
spring 202 used to implement the second return-to-null assembly 106-2 includes 11
number of individual cantilever springs 302.
[0032] Returning now to FIG. 2, the pivot assembly 206, as was previously noted, includes
two contacts - a first contact 216 and a second contact 218. The pivot assembly additionally
includes two load springs - a first load spring 220 and a second load spring 222.
The first load spring 220 is configured to supply a first force to the first contact
216 that urges the first contact 216 into engagement with the cantilever spring first
side 212, and the second load spring 222 is configured to supply a second force to
the second contact 218 that urges the second contact 218 into engagement with the
cantilever spring second side 214. The pivot assembly 206 may be variously disposed,
but is preferably disposed at a location that is closer to the cantilever spring free
end 210 than the cantilever spring fixed end 208. In the depicted embodiment, the
pivot assembly 206 is disposed substantially adjacent to the cantilever bean free
end 210.
[0033] The pivot assembly first and second contacts 216, 218, in addition to being spring
loaded toward the cantilever spring 202, are also configured to rotate relative to
the cantilever spring 202. The first and second load springs 220, 222 preferably supply
equivalent (or at least substantially equivalent) force magnitudes to the respective
contacts 216, 218. Moreover, the first and second forces are preferably of magnitudes
sufficient to allow the cantilever spring 202 to move freely, while maintaining contact
with the first and second contacts 216, 218 throughout the range of operation. The
pivot assembly 206 may be disposed such that the cantilever spring 202 exhibits equal
(or at least substantially equal) spring rates no matter the direction (e.g., clockwise
or counterclockwise) in which the shaft 122 (124) is rotated, or it may be mounted
such that the cantilever spring 202 exhibits dual spring rates, depending on the direction
in which the shaft 122 (124) is rotated. It will be appreciated that the pivot assembly
206 may be variously configured and implemented. However, a particular preferred implementation
of the pivot assembly 206 is depicted in FIGS. 4-9, and before further describing
the spring return-to-null assembly 106 will be described in greater detail.
[0034] Referring first to FIG. 4, the pivot assembly 206 includes a frame 402, within which
the first and second contacts 216, 218 and first and second load springs 220, 222
are disposed. The frame 402, as depicted most clearly in FIG. 5, includes a first
end 502, a second end 504, a top surface 506, a bottom surface 508, a front surface
510, and a rear surface 512. The first and second ends 502 and 504 include symmetrically
disposed openings 514 and 516, respectively, the top and bottom surfaces 506 and 508
include symmetrically disposed openings 518 and 520, respectively, and the front and
rear surfaces 510 and 512 include symmetrically disposed openings 522 and 524, respectively.
[0035] With continued reference to FIG. 5, and with reference also to FIGS. 6-9, it is seen
that the first and second contacts 216, 218 each include a bracket 526, a roller shaft
528, a roller 532, and a plurality of bearings 534 (e.g., 534-1, 534-2). The bracket
526 includes two guides 536 (e.g., 536-1, 536-2) and an end plate 538. The guides
536-1 and 536-2 extend through the symmetric openings 522 and 524, respectively, and
into first and second guides 540-1 and 540-2, respectively. The first and second guides
540-1 and 540-2 are coupled to the frame front and rear surfaces 510 and 512, respectively,
and are preferably formed of a low friction material, such as polytetrafluoroethylene,
or other suitable material. The guides 540 prevent the brackets 526 from rotating
while providing relatively low friction interfaces for relatively rapid axial bracket
526 movements.
[0036] The roller shafts 528 are each coupled to one of the brackets 526, via suitable openings
in the bracket guides 536, and the rollers 532 are each rotationally mounted on one
of the roller shafts 528 via the plurality of bearings 534. In particular, as is shown
most clearly in FIG. 9, each bearing includes an inner race 902, which is mounted
on one of the roller shafts 528, an outer race 904, on which one of the rollers 532
is mounted, and a plurality of bearing balls 906 disposed between the inner 902 and
outer 904 races. With this configuration the rollers 532 are thus rotatable about
the roller shafts 528.
[0037] Returning once again to FIG. 5, and referring also to FIG. 8, it is seen that the
pivot assembly further includes a pair of spring nuts 542 (e.g., 542-1, 542-2) and
a pair of roller guides 544 (e.g., 544-1, 544-2). The spring nuts 542-1 and 542-2
extend through the openings 514 and 516, respectively, and are retained therein via,
for example, suitable mating threads. The roller guides 544-1 and 544-2 extend through
openings 546-1 and 546-2, respectively, formed through the spring nuts 542, and are
coupled to one of the brackets 526. More specifically, each roller guide 544 is coupled
to one of the bracket end plates 538 via, for example, suitably threaded openings
formed therein. The roller guides 544-1 and 544-2 additionally extend through the
first load spring 220 and the second load spring 222, respectively. As FIG. 8 also
shows most clearly, the first load spring 220 and the second load springs 222 also
engage the first spring nut 542-1 and the second spring nut 542-2, respectively. It
may thus be appreciated that the first spring nut 542-1 and the second spring nut
542-2 are preferably used to adjust the spring force supplied from the first load
spring 220 and the second load spring 222, respectively, to the first contact 216
and the second contact 218, respectively. As noted previously, the first and second
load springs 220, 222 are preferably adjusted to supply equivalent (or at least substantially
equivalent) spring force magnitudes to the first and second contacts 216, 218, respectively.
[0038] Referring now to FIG. 6 in combination with FIG. 5, the pivot assembly 206 also preferably
includes a pair of cover plates 548 (e.g., 548-1, 548-2). The cover plates 548-1 and
548-2 are coupled to the frame front surface 510 and rear surface 512, respectively,
via suitable fasteners 549. The cover plates 548-1 and 548-2, when installed, cover
the openings 522 and 524, respectively, and also retain the first guide 540-1 and
the second guide 540-2 in place. As FIGS. 4-6 also depict, the frame 402 additionally
includes a plurality of mount posts 404 (e.g., 404-1, 404-2). The mount posts 404
are used to mount the pivot assembly 206 to, for example, the housing 110 assembly
of FIG. 1, via suitable non-illustrated fasteners. As will be described in more detail
further below, the housing assembly 110 is preferably configured such that the pivot
assembly 206 may be mounted thereto at a plurality angles relative to the spring 202.
[0039] Returning once again to FIG. 2, the pivot assembly 206 is shown mounted such that
the spring return-to-null assembly 106 exhibits equal (or at least substantially equal)
spring rates no matter the direction (e.g., clockwise or counterclockwise) in which
the shaft 122 (124) is rotated. More specifically, the pivot assembly 206 is mounted
substantially perpendicular to an axis 221 that extends through the cantilever spring
202 between the cantilever spring fixed end 208 and the free end 210. With the pivot
assembly 206 thusly mounted, when the shaft 122 (124) is in the null position 109
the first and second contacts 216, 218 (e.g., the rollers 532) engage the cantilever
spring first and second sides 212, 214, respectively, at equal (or at least substantially
equal) distances from the cantilever spring fixed end 208.
[0040] Turning now to FIGS. 10 and 11, operation of the spring return-to-null assembly 106
will be described when the pivot assembly 206 is mounted as depicted in FIG. 2, and
the shaft 122 (124) is rotated. When the shaft 122 (124) is rotated out of the null
position 109, the cantilever spring fixed end 208, via the clamp 204, is also rotated.
The cantilever spring 202, as noted above, is free to move axially between the first
and second contacts 216, 218 whenever the cantilever spring free end 210 is rotated.
Moreover, and as FIG. 11 shows most clearly, the cantilever spring 202, upon rotation
of the cantilever spring fixed end 208, reacts against the first and second contacts
216, 218, axially displacing the first and second contacts 216, 218 (illustrated via
the double-headed arrow in FIG. 11) and compressing the first and second load springs
220, 222. The compression of the first and second load springs 220, 222 produces a
counter-force on the cantilever spring 202. As the rotation of the shaft 122 (124)
increases this counter-force increases and simulates a spring with a constant (or
at least substantially constant) force output. It is noted that although the operation
of the spring return-to-null assembly 106 is depicted and described for shaft rotations
in the clockwise direction (as viewed in FIG. 10), operation of the spring return-to-null
assembly 106 would be substantially identical for shaft rotations in the counterclockwise
direction.
[0041] With reference now to FIG. 12, operation of the spring return-to-null assembly 106
will be described when the pivot assembly 206 is mounted such that the cantilever
spring 202 exhibits dual spring rates. More specifically, the pivot assembly 206 is
mounted such that an axis of symmetry 1202 that extends through the pivot assembly
206 between the first and second ends 502, 504 of the frame 402 is disposed at an
angle (α) relative to the above-mentioned axis 221 that extends through the cantilever
spring 202. It will be appreciated that the angle (α) may vary, and may be selected
to implement the desired different spring rates. When the pivot assembly 206 is thusly
mounted, as shown most clearly in FIG. 13, when the shaft 122 (124) is in the null
position 109 the first and second contacts 216, 218 (e.g., the rollers 532) engage
the cantilever spring first and second sides 212, 214, respectively, at unequal distances
from the cantilever spring fixed end 208. In the depicted embodiment, the first contact
216 engages the cantilever spring first side 212 at a location that is closer to the
cantilever spring fixed end 208 than the location at which the second contact 218
engages the cantilever spring second side 214.
[0042] Operation of the spring return-to-null assembly 106 when the pivot assembly 206 is
mounted as depicted in FIGS. 12 and 13, and when the shaft 122 (124) is rotated out
of the null position 109, is depicted in FIGS. 14-17. As described before, when the
shaft 122 (124) is rotated out of the null position 109, the cantilever spring fixed
end 208, via the clamp 204, is also rotated, and the cantilever spring 202 reacts
against the first and second contacts 216, 218, axially displacing the first and second
contacts 216, 218 and compressing the first and second load springs 220, 222. As was
also described previously, the compression of the first and second load springs 220,
222 produces a counter-force on the cantilever spring 202 that increases as shaft
rotation in the same direction increases. However, because of the different contact
216, 218 locations, the spring rate exhibited by the cantilever spring 202, and thus
the torque it supplies to the shaft 122 (124), differs depending upon whether the
shaft 122 (124) is rotated in the counterclockwise direction (FIGS. 14 & 15) or the
clockwise direction (FIGS. 16 & 17). With the configuration depicted in FIG. 12, the
compression spring 202 will exhibit a relatively higher spring rate when the shaft
122 (124) is rotated in the counterclockwise direction, than when the shaft 122 (124)
is rotated in the clockwise direction.
[0043] The spring return-to-null assembly 106, in addition to being configurable to exhibit
either equal or dual spring rates, also maintains smooth motion, by virtue of the
continuous engagement between the first and second contacts 216, 218 and the cantilever
spring 202, throughout the full rotational range(s) of the shaft(s) 122 (124). As
a result, a crossover "click" is not exhibited when the shaft 122 (124) is rotated
through the null position. The spring return-to-null assembly 106 also does not exhibit
the non-linear effect that is typically associated with cantilever springs with a
fixed pivot point. Moreover, when strain gages are included on the compression spring(s)
202, position and health monitoring functions can be implemented.
[0044] While at least one exemplary embodiment has been presented in the foregoing detailed
description of the invention, it should be appreciated that a vast number of variations
exist. It should also be appreciated that the exemplary embodiment or exemplary embodiments
are only examples, and are not intended to limit the scope, applicability, or configuration
of the invention in any way. Rather, the foregoing detailed description will provide
those skilled in the art with a convenient road map for implementing an exemplary
embodiment of the invention. It being understood that various changes may be made
in the function and arrangement of elements described in an exemplary embodiment without
departing from the scope of the invention as set forth in the appended claims.
1. A spring-return-to-null assembly, comprising: a shaft,
a cantilever spring (202) including a fixed end (208), a free end (210), and opposing
first and second sides (212, 214), the cantilever spring fixed end adapted to be coupled,
in use, to said shaft (122) to rotate therewith and configured to supply a torque
to the said shaft at least when a torque is supplied to the cantilever spring fixed
end; and
a pivot assembly (206) engaging the cantilever spring at a location that is closer
to the cantilever spring free end than the cantilever spring fixed end, the pivot
assembly including:
a first contact (216) engaging the cantilever spring first side (212) at a location
on the cantilever spring first side that is a first adjustable distance from the cantilever
spring fixed end,
a second contact (218) engaging the cantilever spring second side (214) at a location
on the cantilever spring second side that is a second adjustable distance from the
cantilever spring fixed end,
a first load spring (220) supplying a force to the first contact that urges the first
contact into engagement with the cantilever spring first side, and
a second load spring (222) supplying a force to the second contact that urges the
second contact into engagement with the cantilever spring second side and wherein
the said shaft to which the cantilever spring fixed end adapted to be coupled is configured
to rotate about a first rotational axis; and
the first and second distances are adjusted by rotating the pivot assembly about a
second rotational axis that is parallel to the first rotational axis.
2. The assembly of Claim 1, further comprising:
a clamp (204) coupled to the cantilever spring fixed end and adapted to be coupled
to the shaft.
3. The assembly of Claim 1, wherein the first and second contacts each comprise a rotationally
mounted roller (532) that is rotatable relative to the cantilever spring.
4. The assembly of Claim 1, wherein the cantilever spring, upon application of the torque
to the cantilever spring fixed end, displaces the first and second contacts in opposing
axial directions, to thereby compress the first and second load springs.
5. The assembly of Claim 1, wherein:
the pivot assembly further comprises a frame (402);
the first contact, the second contact, the first load spring, and the second load
spring are each disposed within the frame; and
the cantilever spring extends through the frame.
6. The assembly of Claim 5, wherein the first and second contacts (216, 218) each comprise:
a bracket (526) movably disposed within the frame (402);
a roller shaft (528) coupled to the bracket;
a roller (532) surrounding at least a portion of the roller shaft ; and
a plurality of bearings (534), each bearing including an inner race (902) and an outer
race (904), each of the inner races mounted on the roller shaft, the roller mounted
on each of the outer races.
7. The assembly of Claim 6, wherein:
the frame includes a first end (502), a second end (504), a top surface (506), a bottom
surface (508), a front surface (510), and a rear surface (512), symmetric first openings
(514, 516) in the first and second ends, symmetric second openings (518,520) in the
top and bottom surfaces, and symmetric third openings (522, 524) in the front and
rear surfaces;
the cantilever spring extends through the symmetric second openings; and
portions of each bracket extend through the symmetric third openings.
8. The assembly of Claim 7, further comprising:
a first spring nut (542) extending through one of the first openings;
a second spring nut (542) extending through another of the first openings;
a first roller guide (544) coupled between the first spring nut and one of the rollers;
a second roller guide (544) coupled between the second spring nut and another of the
rollers.
1. Anordnung mit Rückkehr zu null mittels Feder mit einer Welle,
einer Auslegerfeder (202) mit einem feststehenden Ende (208), einem freien Ende (210)
und einer ersten und zweiten Seite (212, 214), die sich gegenüberliegen, wobei das
feststehende Ende der Auslegerfeder dazu geeignet ist, im Gebrauch an die Welle (122)
gekoppelt zu sein, um sich mit ihr zu drehen, und so konfiguriert ist, der Welle mindestens
dann ein Drehmoment zu verleihen, wenn dem feststehenden Ende der Auslegerfeder ein
Drehmoment verliehen wird, und
einer Schwenkanordnung (206), die die Auslegerfeder an einer Stelle in Eingriff nimmt,
die dem freien Ende der Auslegerfeder näher ist als dem feststehenden Ende der Auslegerfeder,
wobei die Schwenkanordnung Folgendes aufweist:
einen ersten Kontakt (216), der die erste Seite (212) der Auslegerfeder an einer Stelle
an der ersten Seite der Auslegerfeder in Eingriff nimmt, die einen ersten verstellbaren
Abstand vom feststehenden Ende der Auslegerfeder hat,
einen zweiten Kontakt (218), der die zweite Seite (214) der Auslegerfeder an einer
Stelle an der zweiten Seite der Auslegerfeder in Eingriff nimmt, die einen zweiten
verstellbaren Abstand vom feststehenden Ende der Auslegerfeder hat,
eine erste Belastungsfeder (220), die den ersten Kontakt mit einer Kraft beaufschlagt,
die den ersten Kontakt in Eingriff mit der ersten Seite der Auslegerfeder drängt,
und
eine zweite Belastungsfeder (222), die den zweiten Kontakt mit einer Kraft beaufschlagt,
die den zweiten Kontakt in Eingriff mit der zweiten Seite der Auslegerfeder drängt,
und wobei
die Welle, an die das feststehende Ende der Auslegerfeder gekoppelt werden kann, so
konfiguriert ist, dass sie sich um eine erste Drehachse dreht, und
der erste und der zweite Abstand verstellt werden, indem die Schwenkanordnung um eine
zweite Drehachse, die parallel zur ersten Drehachse verläuft, gedreht wird.
2. Anordnung nach Anspruch 1, ferner mit einer Klemme (204), die an das feststehende
Ende der Auslegerfeder gekoppelt ist und dazu geeignet ist, an die Welle gekoppelt
zu werden.
3. Anordnung nach Anspruch 1, wobei der erste und der zweite Kontakt jeweils eine drehmäßig
montierte Walze (532) umfasst, die bezüglich der Auslegerfeder drehbar ist.
4. Anordnung nach Anspruch 1, wobei die Auslegerfeder bei Beaufschlagung des feststehenden
Endes der Auslegerfeder mit dem Drehmoment den ersten und den zweiten Kontakt in entgegengesetzte
axiale Richtungen verschiebt, um dadurch die erste und die zweite Belastungsfeder zusammenzudrücken.
5. Anordnung nach Anspruch 1, wobei
die Schwenkanordnung ferner einen Rahmen (402) umfasst,
der erste Kontakt, der zweite Kontakt, die erste Belastungsfeder und die zweite Belastungsfeder
jeweils im Rahmen angeordnet sind und
sich die Auslegerfeder durch den Rahmen erstreckt.
6. Anordnung nach Anspruch 5, wobei der erste und der zweite Kontakt (216, 218) jeweils
Folgendes umfassen:
eine beweglich im Rahmen (402) angeordnete Konsole (526),
eine Walzenwelle (528), die an die Konsole gekoppelt ist,
eine Walze (532), die mindestens einen Abschnitt der Walzenwelle umgibt, und
mehrere Lager (534), wobei jedes Lager einen inneren Laufring (902) und einen äußeren
Laufring (904) aufweist, wobei jeder der inneren Laufringe an der Walzenwelle montiert
ist und die Walze an jedem der äußeren Laufringe montiert ist.
7. Anordnung nach Anspruch 6, wobei
der Rahmen ein erstes Ende (502), ein zweites Ende (504), eine obere Fläche (506),
eine untere Fläche (508), eine vordere Fläche (510) und eine hintere Fläche (512),
symmetrische erste Öffnungen (514, 516) im ersten und zweiten Ende, symmetrische zweiten
Öffnungen (518, 520) in der oberen und der unteren Fläche und symmetrische dritte
Öffnungen (522, 524) in der vorderen und der hinteren Fläche aufweist,
sich die Auslegerfeder durch die symmetrischen zweiten Öffnungen erstreckt und
sich Abschnitte jeder Konsole durch die symmetrischen dritten Öffnungen erstrecken.
8. Anordnung nach Anspruch 7, ferner mit einer ersten Federmutter (542), die sich durch
eine der ersten Öffnungen erstreckt,
einer zweiten Federmutter (542), die sich durch eine andere der ersten Öffnungen erstreckt,
einer ersten Walzenführung (544), die zwischen der ersten Federmutter und einer der
Walzen gekoppelt ist, und
einer zweiten Walzenführung (544), die zwischen der zweiten Federmutter und einer
anderen der Walzen gekoppelt ist.
1. Ensemble de retour en position neutre par ressort, comprenant :
un arbre,
un ressort en porte-à-faux (202) comportant une extrémité fixe (208), une extrémité
libre (210), et des premier et deuxième côtés (212, 214) opposés, l'extrémité fixe
du ressort en porte-à-faux étant conçue pour être accouplée, lors de l'utilisation,
audit arbre (122) pour tourner avec ce dernier et configurée pour fournir un couple
audit arbre au moins lorsqu'un couple est fourni à l'extrémité fixe du ressort en
porte-à-faux ; et
un ensemble de pivot (206) engageant le ressort en porte-à-faux en un emplacement
qui est plus proche de l'extrémité libre du ressort en porte-à-faux que de l'extrémité
fixe du ressort en porte-à-faux, l'ensemble de pivot comportant :
un premier élément de contact (216) engageant le premier côté (212) du ressort en
porte-à-faux en un emplacement sur le premier côté du ressort en porte-à-faux qui
est à une première distance ajustable de l'extrémité fixe du ressort en porte-à-faux,
un deuxième élément de contact (218) engageant le deuxième côté (214) du ressort en
porte-à-faux en un emplacement sur le deuxième côté du ressort en porte-à-faux qui
est à une deuxième distance ajustable de l'extrémité fixe du ressort en porte-à-faux,
un premier ressort de charge (220) fournissant une force au premier élément de contact
qui pousse le premier élément de contact en engagement avec le premier côté du ressort
en porte-à-faux, et
un deuxième ressort de charge (222) fournissant une force au deuxième élément de contact
qui pousse le deuxième élément de contact en engagement avec le deuxième côté du ressort
en porte-à-faux et dans lequel ledit arbre auquel l'extrémité fixe du ressort en porte-à-faux
est conçue pour être accouplée est configuré pour tourner autour d'un premier axe
de rotation ; et les première et deuxième distances sont ajustées en faisant tourner
l'ensemble de pivot autour d'un deuxième axe de rotation qui est parallèle au premier
axe de rotation.
2. Ensemble selon la revendication 1, comprenant en outre :
un dispositif de serrage (204) accouplé à l'extrémité fixe du ressort en porte-à-faux
et conçu pour être accouplé à l'arbre.
3. Ensemble selon la revendication 1, dans lequel les premier et deuxième éléments de
contact comprennent chacun un rouleau (532) monté rotatif qui peut tourner par rapport
au ressort en porte-à-faux.
4. Ensemble selon la revendication 1, dans lequel le ressort en porte-à-faux, lors de
l'application du couple à l'extrémité fixe du ressort en porte-à-faux, déplace les
premier et deuxième éléments de contact dans des directions axiales opposées, comprimant
ainsi les premier et deuxième ressorts de charge.
5. Ensemble selon la revendication 1, dans lequel :
l'ensemble de pivot comprend en outre un cadre (402) ;
le premier élément de contact, le deuxième élément de contact, le premier ressort
de charge et le deuxième ressort de charge sont tous disposés dans le cadre ; et
le ressort en porte-à-faux s'étend à travers le cadre.
6. Ensemble selon la revendication 5, dans lequel les premier et deuxième éléments de
contact (216, 218) comprennent chacun :
un support (526) disposé de manière mobile dans le cadre (402) ;
un arbre de rouleau (528) accouplé au support ;
un rouleau (532) entourant au moins une partie de l'arbre de rouleau ; et
une pluralité de roulements (534), chaque roulement comportant une bague intérieure
(902) et
une bague extérieure (904), chacune des bagues intérieures étant montée sur l'arbre
de rouleau,
le rouleau étant monté sur chacune des bagues extérieures.
7. Ensemble selon la revendication 6, dans lequel :
le cadre comporte une première extrémité (502),
une deuxième extrémité (504), une surface supérieure (506), une surface inférieure
(508),
une surface avant (510) et une surface arrière (512), des premières ouvertures symétriques
(514, 516) dans les première et deuxième extrémités, des deuxièmes ouvertures symétriques
(518, 520) dans les surfaces supérieure et inférieure, et des troisièmes ouvertures
symétriques (522, 524) dans les surfaces avant et arrière ;
le ressort en porte-à-faux s'étend à travers les deuxièmes ouvertures symétriques
; et
des parties de chaque support s'étendent à travers les troisièmes ouvertures symétriques.
8. Ensemble selon la revendication 7, comprenant en outre :
un premier écrou à ressort (542) s'étendant à travers l'une des premières ouvertures
;
un deuxième écrou à ressort (542) s'étendant à travers une autre des premières ouvertures
;
un premier guide de rouleau (544) accouplé entre le premier écrou à ressort et l'un
des rouleaux ;
un deuxième guide de rouleau (544) accouplé entre le deuxième écrou à ressort et un
autre des rouleaux.